The present invention relates to lights and tracking systems for use in low light environments such as underground mines. More specifically, the present invention relates to lights using visible and ultraviolet light to illuminate unique markings associated with certain assets and a system for identifying and tracking those assets.
Low light conditions present a hazard to underground mine workers and the like who work in close proximity to large industrial machinery. To increase visibility, such workers are often outfitted personal protective equipment such as reflective or high visibility colored clothing. The introduction of LED lighting technology has reduced much of the ultraviolet (UV) radiation emitted from an artificial light source to near zero. While the efficiency of the LED lighting is very desirable, its use alters the spectral breadth of the light being produced. The lack of ultraviolet light degrades the effectiveness of safety markings placed on equipment and the clothing and safety equipment worn by personnel, in that many of such markings are designed to fluoresce, which requires the presence of UV spectral power.
Ultraviolet light is an electromagnetic radiation with a wavelength from roughly 10 nm (30 PHz) to 380 nm (750 THz), which is a shorter wavelength than that of visible light but longer than X-rays. UV radiation is present in sunlight, and also produced by electric arcs and specialized lights such as mercury-vapor lamps, tanning lamps, and black lights. Although the UV light lacks the energy to ionize atoms, long-wavelength ultraviolet radiation can influence chemical reactions, and causes many substances to glow or fluoresce.
In certain situations, it is often advantageous to be able to identify certain objects and distinguish them from other objects in low light conditions. For example, different actions may need to be taken if an underground mining machine identifies a person in its field of view as opposed to another machine in that same field of view. It may also be beneficial to track assets that are identified as being in the proximity of a particular machine in an underground mine.
Accordingly, there is a need for a lighting unit for use in low light areas that emits visible light and ultraviolet light to improve the fluorescing of reflectors in low light conditions. There is also a need for a system using such a lighting unit that can identify and track objects in low light conditions and differentiate objects from other objects.
It is therefore an object of the present invention to provide a lighting unit for use in low lighting areas that transmits light in the ultraviolet spectrum in a broad area while simultaneously transmitting visual light in a focused beam.
It is also an object of the invention to provide a system for detecting patterns on objects having reflective or high visibility colored material thereon through the use of an improved lighting unit as described above in conjunction with a camera, controller/processor, warning devices and specific patterns of fluorescent or high visibility markings on objects to distinguish them from other objects.
The present invention meets these objects by providing an improved lighting unit having ultraviolet light emitters that transmit UV light without the use of a lens to direct or focus the light while simultaneously emitting visual light from visual light emitters through a lens which directs and focuses the visual light. Further, the present invention meets these objects by providing a system for detecting patterns on objects having reflective or high visibility colored material thereon using the light unit described in conjunction with a camera, controller, and warning device to differentiate objects from one another.
According to one presently preferred embodiment of the invention, there is provided a lighting unit for use in an underground mine comprising a main housing, a first visual light assembly and a second ultraviolet light assembly. The main housing includes a front opening and a cavity. The first visual lighting assembly is positioned within the cavity of the main housing and includes a first visual light emitter that emits light in the visible spectrum. The second ultraviolet lighting assembly is positioned a fixed distance from the first visual lighting assembly within the cavity of the main housing and includes a second ultraviolet light emitter that emits light in the ultraviolet spectrum. A spacer ring may be located between the first and second lighting assemblies. The first visual lighting assembly may further include a visual light printed circuit board having one or more visible light emitters, which may be light emitting diodes, located thereon. The second ultraviolet lighting assembly may include a separate UV light printed circuit board having one or more UV light emitters located thereon. The UV light printed circuit board may further include one or more openings therein corresponding to and aligned with the one or more visible light emitters to allow the visual light emitted from the visible light emitters to project from the front of the lighting unit. One or more lenses corresponding to and positioned within the one or more openings may also be provided to focus and direct the visual light emitted by the one or more visual light emitters.
According to an alternative embodiment of the present invention, there is provided a lighting unit for use in an underground mine comprising a main housing, a visual and ultraviolet lighting assembly and a lens. The main housing includes a front opening and a cavity. The visual and ultraviolet lighting assembly is positioned within the cavity of the main housing and includes a first visual light emitter that emits light in the visible spectrum and a second ultraviolet light emitter that emits light in the ultraviolet spectrum. The lens is positioned at the front opening of the main housing and includes means for transmitting both the visual and ultraviolet light emitted from the lighting assembly. The visual and ultraviolet lighting assembly may include a plurality of visible light emitters and a plurality of ultraviolet light emitters. The lens may be configured to magnify and direct the visual light at a desired beam. A plurality of light pipes are provided in the lens, each light pipe being aligned with a corresponding one of the plurality of ultraviolet light emitters for transmitting the ultraviolet light from the housing without magnification or beam expansion. The lens may be formed from a silicone material and the light pipes may be formed of an acrylic material embedded in the silicone lens. A driver printed circuit board may be provided and is electrically coupled to the visible light printed circuit board and the ultraviolet light printed circuit board to transmit data, information and/or power to the printed circuit boards, visible light emitters, and ultraviolet light emitters. The driver printed circuit board is preferably located in a rear opening of the main housing.
According to yet another embodiment of the present invention, there is provided a system for detecting reflective patterns on objects such as safety vests and mining helmets comprising a lighting unit, a camera, a warning device, a controller/processor, means for transmitting a signal and means for distinguishing and differentiating patterns on the objects. The lighting unit comprises a main housing having a front opening and a cavity, a first visual lighting assembly positioned within the cavity of the main housing and having a first visual light emitter that emits light in the visible spectrum, and a second ultraviolet lighting assembly positioned a fixed distance from the first visual lighting assembly within the cavity of the main housing and having a second ultraviolet light emitter that emits light in the ultraviolet spectrum. The camera has a field of view within which the system is configured to detect patterns of reflective material on one or more objects. The warning device is configured to alert the operator when one of the one or more objects enters the camera's field of view. The controller/processor is programmed to detect when a pattern of reflective material enters the camera's field of view. Means for transmitting a signal from the controller/processor to the warning device, and means for distinguishing and differentiating patterns of reflective material on each of said one or more objects are also provided in accordance with this embodiment of the invention. A display for displaying images from the camera may also be provided. The controller/processor is programmed to recognize and learn different patterns of reflective material, and different patterns are associated with different objects. The camera may be equipped with infrared lighting to assist in detecting objects in low or no light conditions. The display is preferably a high-definition digital color display which aids in viewing the patterns of reflective material.
These and other objects, features and advantages of the present invention will become apparent from a review of the following drawings and detailed description of the preferred embodiments of the invention.
The present invention can best be understood in connection with the accompanying drawings. It is noted that the invention is not limited to the precise embodiments shown in the drawings, in which:
For purposes of promoting and understanding of the principles of the invention, reference will now be made to the embodiments illustrated in the drawings and specific language will be used to describe the same. It will nevertheless be understood that no limitation of the scope of the invention is thereby intended. The invention includes any alterations and further modifications in the illustrated devices and described methods and further applications of the principles of the invention that would normally occur to one skilled in the art to which the invention relates.
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According to a preferred embodiment of the invention, the visual lighting assembly 30 includes a visual light printed circuit board 32 upon which a plurality of visible light emitters 34a, 34b, 34c are located. While
The UV lighting assembly 40 according to the preferred embodiment shown in
A driver printed circuit board 70 is also provided according to the preferred embodiment of the invention. The driver PCB 70 is electrically coupled to the visible light PCB 32 and UV light PCB 42 to transmit data, information and/or power to the PCBs and visible light emitters 34a, 34b, 34c and UV light emitters 44a, 44b. According to the preferred embodiment shown in
Power is supplied to the visible light PCB 32 and UV light PCB 42 via the driver PCB 70. According to a further embodiment or aspect of the invention, an AC-DC converter PCB (not shown) is utilized to accommodate AC voltage specifications (6 VAC at present). According to this aspect of the invention, the converter PCB would be installed in the rear cavity 24 of the housing 22 above the driver PCB 70.
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An alternative embodiment of a lighting unit 110 is shown in
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This detailed description, and particularly the specific details of the exemplary embodiment disclosed, is given primarily for clearness of understanding and no unnecessary limitations are to be understood therefrom, for modifications will become evident to those skilled in the art upon reading this disclosure and may be made without departing from the spirit or scope of the claimed invention.
Number | Date | Country | |
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62557793 | Sep 2017 | US |